Patel Twinkal, Kim Minsoo P, Park Junyoung, Lee Tae Hee, Nellepalli Pothanagandhi, Noh Seung Man, Jung Hyun Wook, Ko Hyunhyub, Oh Jung Kwon
Department of Chemistry and Biochemistry, Concordia University, Montreal, Quebec Canada H4B 1R6.
School of Energy and Chemical Engineering, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.
ACS Nano. 2020 Sep 22;14(9):11442-11451. doi: 10.1021/acsnano.0c03819. Epub 2020 Sep 1.
In recent years, the advent of highly deformable and healable electronics is exciting and promising for next-generation electronic devices. In particular, self-healable triboelectric nanogenerators (SH-TENGs) serve as promising candidates based on the combination of the triboelectric effect, electrostatic induction, and self-healing action. However, the majority of SH-TENGs have been devised with weak polymeric networks that are healed with reversible supramolecular interactions or disulfides, thus resulting in poor mechanical properties and low resistance to creeping. To address this issue, we demonstrate the integration of mechanically strong and self-healable poly(hindered urea) (PHU) network in the fabrication of effective TENGs. The designed PHU network is flexible but shows greater mechanical property of tensile strength as high as 1.7 MPa at break. The network is capable of self-healing quickly and repeatedly as well as being reprocessable under mild conditions, enabling the recovery of triboelectric performances after the complete healing of the damaged surfaces. Furthermore, the interfacial-polarization-induced enhancement of dielectric constant endows our SH-TENG with the highest triboelectric output performance (169.9 V/cm) among the reported healable TENGs. This work presents an avenue to the development of mechanical energy-harvesting devices and self-powered sensors with excellent stretchability, high recoverability, and good mechanical strength.
近年来,高可变形且可自愈的电子器件的出现,对于下一代电子设备来说令人兴奋且充满前景。特别是,基于摩擦电效应、静电感应和自愈作用的结合,自愈合摩擦纳米发电机(SH-TENGs)成为了有潜力的候选者。然而,大多数SH-TENGs是采用通过可逆超分子相互作用或二硫化物愈合的弱聚合物网络设计的,因此导致机械性能差和抗蠕变性低。为了解决这个问题,我们展示了在有效摩擦纳米发电机的制造中集成机械强度高且可自愈合的聚(受阻脲)(PHU)网络。所设计的PHU网络具有柔韧性,但在断裂时表现出高达1.7 MPa的拉伸强度这一更大的机械性能。该网络能够快速且反复地自我愈合,并且在温和条件下可再加工,使得受损表面完全愈合后摩擦电性能得以恢复。此外,界面极化引起的介电常数增强赋予我们的SH-TENG在已报道的可愈合摩擦纳米发电机中最高的摩擦电输出性能(169.9 V/cm)。这项工作为开发具有优异拉伸性、高恢复性和良好机械强度的机械能收集装置和自供电传感器提供了一条途径。